Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonation

Energy output and heating effects are essential for vapor-liquid fuel/air cloud detonation in the fuel-air explosive (FAE) applications or explosion accidents. The purpose of this study is to examine the dynamic large-size flame behavior, shock wave propagation law, and instantaneous thermal field g...

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Main Authors: Cong-liang Ye, Qing-lei Du, Li-juan Liu, Qi Zhang
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2023-07-01
Series:Defence Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214914722000952
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author Cong-liang Ye
Qing-lei Du
Li-juan Liu
Qi Zhang
author_facet Cong-liang Ye
Qing-lei Du
Li-juan Liu
Qi Zhang
author_sort Cong-liang Ye
collection DOAJ
description Energy output and heating effects are essential for vapor-liquid fuel/air cloud detonation in the fuel-air explosive (FAE) applications or explosion accidents. The purpose of this study is to examine the dynamic large-size flame behavior, shock wave propagation law, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide (PO)/air cloud detonation. Based on computational fluid dynamics (CFD) and combustion theory, a numerical simulation is used to study the detonation process of a PO/air cloud produced by a double-event fuel-air explosive (DEFAE) of 2.16 kg. The large-scale flame behavior is characterized. The flame initially spreads radially and laterally in a wing shape. Subsequently, the developed flame increases with a larger aspect ratio. Moreover, the propagation laws of shock waves at different heights are discussed. The peak pressure of 1.3 m height level with a stepwise decline is obviously different from that of the ground with an amplitude of reversed 'N' shape. In the vast majority of the first 6.9 m, the destructive effect of the shock wave near the ground is greater than that of the shock wave at 1.3 m height. Furthermore, the dynamic instantaneous isothermal field is demonstrated. The scaling relationship of various isotherms in the instantaneous thermal field with the flame and initial cloud is summarized. The comprehensive numerical model used in this study can be applied to determine the overpressure and temperature distribution in the entire fuel/air cloud detonation field, providing guidance for assessing the extent of damage caused by DEFAE detonation.
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spelling doaj.art-c434eb095d4041ae986ac4f1d12564ce2023-07-19T04:23:32ZengKeAi Communications Co., Ltd.Defence Technology2214-91472023-07-01251832Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonationCong-liang Ye0Qing-lei Du1Li-juan Liu2Qi Zhang3State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, 100081, ChinaState Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, 100081, ChinaSchool of Safety Science and Emergency Management, Wuhan University of Technology, Wuhan, Hubei, 430070, ChinaState Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, 100081, China; Corresponding author.Energy output and heating effects are essential for vapor-liquid fuel/air cloud detonation in the fuel-air explosive (FAE) applications or explosion accidents. The purpose of this study is to examine the dynamic large-size flame behavior, shock wave propagation law, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide (PO)/air cloud detonation. Based on computational fluid dynamics (CFD) and combustion theory, a numerical simulation is used to study the detonation process of a PO/air cloud produced by a double-event fuel-air explosive (DEFAE) of 2.16 kg. The large-scale flame behavior is characterized. The flame initially spreads radially and laterally in a wing shape. Subsequently, the developed flame increases with a larger aspect ratio. Moreover, the propagation laws of shock waves at different heights are discussed. The peak pressure of 1.3 m height level with a stepwise decline is obviously different from that of the ground with an amplitude of reversed 'N' shape. In the vast majority of the first 6.9 m, the destructive effect of the shock wave near the ground is greater than that of the shock wave at 1.3 m height. Furthermore, the dynamic instantaneous isothermal field is demonstrated. The scaling relationship of various isotherms in the instantaneous thermal field with the flame and initial cloud is summarized. The comprehensive numerical model used in this study can be applied to determine the overpressure and temperature distribution in the entire fuel/air cloud detonation field, providing guidance for assessing the extent of damage caused by DEFAE detonation.http://www.sciencedirect.com/science/article/pii/S2214914722000952Numerical simulationFuel-air explosiveFuel/air cloudFlameShock waveThermal field
spellingShingle Cong-liang Ye
Qing-lei Du
Li-juan Liu
Qi Zhang
Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonation
Defence Technology
Numerical simulation
Fuel-air explosive
Fuel/air cloud
Flame
Shock wave
Thermal field
title Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonation
title_full Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonation
title_fullStr Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonation
title_full_unstemmed Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonation
title_short Flame behavior, shock wave, and instantaneous thermal field generated by unconfined vapor-liquid propylene oxide/air cloud detonation
title_sort flame behavior shock wave and instantaneous thermal field generated by unconfined vapor liquid propylene oxide air cloud detonation
topic Numerical simulation
Fuel-air explosive
Fuel/air cloud
Flame
Shock wave
Thermal field
url http://www.sciencedirect.com/science/article/pii/S2214914722000952
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